低吸水尺寸稳定尼龙怎么选?吸湿膨胀和热膨胀分开来算

塑料知识科普 发布时间: 2026-09-15 4573 阅读

The dimensional instability of nylon is a topic that has been discussed too many times and also misunderstood too many times.

"Nylon absorbs water, so its size changes" — this sentence is not wrong, but it only tells half the story.

What really needs to be distinguished are two things:

① Moisture absorption and swelling. Water molecules enter between the molecular chains, pushing the chains apart and causing the piece to enlarge. This process is slow and related to humidity.

② Thermal expansion. As the temperature rises, the movement of molecular chains intensifies, causing the part to increase in size. This process is fast and related to temperature.

The time scales, influencing factors, and solutions of the two are all different. Mixing them together will definitely lead to incorrect conclusions.

1. What does water absorption actually do to nylon?

When water molecules enter nylon, they not only 'take up space,' but also:

① The size increases. Hygroscopic expansion is isotropic (unlike the directional orientation of glass fibers).

② Changes in mechanical properties. Water absorption can reduce stiffness and strength, but increase toughness (acting as a plasticizer). This is why 'moisture conditioning' can improve impact performance.

③ Deterioration of electrical performance. Moisture can significantly reduce volume resistivity and CTI. This is the reason why electrical components must refer to humidity-conditioned data.

④ The glass transition temperature decreases. After absorbing water, the material softens at a lower temperature.

So water absorption does not only have 'size' as a consequence. If you only look at size when selecting, you will miss changes in electrical and mechanical properties.

The demand for low water absorption is most often summed up by precision parts customers with one sentence: parts made with the same mold in July and parts made in January cannot fit into the same fixture.

There is a customer who makes sensor housings. During summer, deliveries and assembly went smoothly, but after winter, they gradually reported interference fit being too tight. After placing two batches in a constant temperature room to return to room temperature and measuring again, the difference was about two threads. The reason is not complicated: PA66 absorbs moisture and expands, so the dimensions are different in dry and wet states.

Later, they changed the drawings to indicate wet dimensions and switched the materials to a low water absorption system, and the problem was resolved.

The client's summary is very incisive: the dimensions of the plastic are alive, and the drawings need to keep up with its way of being alive.

This sentence later became our opening line when discussing water absorption issues. Dimensional instability is rarely due to material defects; most of the time it is because the design reference didn’t align with the material properties.

2. Water Absorption Grades of Common Nylons

MaterialBalanced Water Absorption (Typical)grade; class; qualityExplanation
PA46About 12-14%TallTop, precision parts basically excluded
PA6About 2.5-3%Medium and high schoolGeneral materials, size needs to be managed
PA66About 2-2.5%middleSlightly better than PA6
PA610About 1.5%Medium-lowBio-based long carbon chain
PA1010About 1.3-1.5%Medium-lowBio-based
PA612About 1.2%LowGood dimensional stability
PA11About 0.8%Lowlong carbon chain
PA12About 0.7%Minimum (aliphatic)Long carbon chain representative
PA9TAbout 2-3%LowThe lowest among semi-aromatic
PA6TAbout 4-6%Medium-lowSemi-aromatic, higher than PA9T

Pay attention to the comparison in the semi-aromatic column: PA6T and PA9T are both high-temperature nylons, but the water absorption rate differs by nearly a factor of two. This is why precision connectors tend to prefer PA9T in high-humidity environments.

Select Path:

For extremely low water absorption, at room temperature → PA12 (lowest among aliphatic long carbon chains)

Needs extremely low water absorption; for high-temperature situations → PA9T (the lowest among semi-aromatic types)

Low water absorption, comprehensive balance → PA612 / PA610 / PA11

Not sensitive to water absorption → PA6 / PA66, most cost-friendly

3. Two sources of size variation, calculated separately

Coefficient of thermal expansion: Nylon is usually 5-10 ×10⁻⁵ /℃ (unreinforced), and it decreases significantly after reinforcement (glass fiber can reduce it to the order of 2-3 ×10⁻⁵ /℃).

The coefficient of hygroscopic expansion depends on the material's water absorption and swelling behavior. Roughly speaking, for every 1% of water absorbed, the dimensional change is on the order of 0.2-0.3% (varying for different systems).

Let's take an example to get a sense of the scale:

A 100mm long PA66 part may increase in size by more than 0.5mm when it absorbs moisture from a dry state to a 2.5% equilibrium state.

This magnitude is completely unacceptable for parts with a ±0.05mm tolerance.

So the first step in judgment is: first calculate clearly how much moisture your piece absorbs in the working environment and what the corresponding size change is. Many disputes over 'dimension deviations' start from never having done this calculation.

Four, three routes, three kinds of costs

Route 1: Change materials (the most direct, and also the most expensive)

Use grades with lower water absorption (PA12, PA612, PA9T, etc.). The effect is certain, but the material cost increases significantly, and it may also bring changes in other properties (such as strength and temperature resistance).

Route 2: Change the structure (often the most economical)

Allow space for moisture absorption and expansion. Specific approach:

Designed according to moisture absorption equilibrium rather than the dry state, in conjunction with tolerance.

Switch to floating support to avoid rigid constraints

Perform local compensation on the critical mating surface

Change the reference for positioning from 'dimension' to 'structural feature'

This route does not change materials or affect costs, but it requires cooperation from the design side. In many projects, it yields the greatest benefits.

Route Three: Environmental Control and Post-Treatment (for Specific Scenarios)

Humidity treatment: Let the item absorb a moisture content close to its intended use state before leaving the factory

Environmental control: The component is used in a low-humidity environment, and its moisture absorption is naturally small.

Annealing: Eliminates internal stress and reduces subsequent shrinkage

Moisture regulation is the most worthwhile aspect to develop, because it simultaneously improves both size and toughness.

5. How to adjust humidity

Principle: Place the item in a controlled temperature and humidity environment for a period of time, allowing it to absorb moisture until it reaches near equilibrium.

Typical conditions: placed in a high-temperature, high-humidity environment for several days (for example, around 70°C / 60% RH, specifically determined according to the material and target moisture content).

Three functions:

1. Size stabilized in advance — the piece has completed most of its expansion before leaving the factory

2. Toughness Improvement — The plasticizing effect of moisture significantly enhances impact performance

3. Reduce subsequent drift — the degree of change after being installed on the device becomes smaller

When is humidity adjustment needed:

Precision fitted parts

Gears and parts that require impact toughness

Parts that require long-term dimensional stability

When not needed:

Structural components with loose size requirements

Parts that are meant to be used in a dry environment

Materials with inherently very low water absorption (such as PA12, etc., the effect is not obvious)

6. Key Points of Processing and Measurement

① Drying must be thorough. It must be dried before processing (residual moisture will hydrolyze). This does not contradict 'it absorbs moisture during use'—there must be no water during processing, while water is inevitable during use; the requirements are different for the two stages.

② Measurements should be taken in a stable state. The parts just out of the mold have the smallest dimensions, and the measured values have no reference value for assembly.

③ Establish a unified measurement standard. Size verification should indicate whether it is in a 'dry state' or a 'conditioned state.' Discrepancies between parties' standards are the most common source of disputes.

④ Mold temperature affects internal stress and post-shrinkage. Uniform mold temperature control can reduce the uncertainty of post-shrinkage.

⑤ After shrinkage, time should be allowed for observation. Some parts may still undergo dimensional changes days to weeks after forming, so they should be re-measured over a sufficiently long period.

Seven, Five Common Pitfalls

Pitfall 1: Mistaking moisture expansion for thermal expansion.

The time scales and solutions of the two are completely different.

Pitfall 2: Using the dimensions of a newly offline item for assembly.

The item hasn’t absorbed moisture to reach equilibrium yet, so the size will still change.

Pitfall 3: Only change the material, without modifying the tolerance.

After switching to low water absorption material, the tolerance is still defined in the dry state, and the problem will come back in another form.

Pitfall 4: Forgetting that electrical performance is also affected by water absorption.

CTI and volume resistivity will significantly decrease in the conditioned state, so electrical components must refer to the data in the conditioned state.

Pitfall 5: Ignoring 'absorption will make the material tougher.'

Parts in a dry state are more brittle. When conducting impact tests, if the condition is not clearly defined, the conclusions cannot be compared.

8. Boundary Statement

Operating conditionSuggestion
Precision parts (±0.05mm level) Humid environmentSwitch to low water absorption materials (PA12 / PA612 / PA9T)
Precision parts dry environmentGeneral materials can be retained, with focus on moisture adjustment and tolerance design.
High temperature Precision HumidityPA9T (lowest water absorption among semi-aromatic types)
Room Temperature PrecisionPA12 / PA612
Loosely sized structural componentsNo need to change the material, PA6 / PA66 is sufficient
Electrical components (high CTI requirements)Materials must be selected according to the moisture-adjusted state data.
Need to improve resilience at the same timeMoisture regulation treatment, killing two birds with one stone

A real insight from the industry: in disputes over dimensional tolerances, what we encounter most is not that the wrong material was chosen, but that the measurement timing is inconsistent. In one precision parts project, the client reported that the parts 'couldn't be assembled.' When we measured the parts sent over, the dimensions were at the lower limit of the tolerance — yet when the client measured the received parts, the dimensions were at the upper limit. Both sets of data were accurate; the difference came from the parts absorbing moisture during transport and storage. Later, two measures were taken: before leaving the factory, humidity was standardized to a target moisture content, and 'moisture-conditioned dimensions' were explicitly written as a requirement on the drawings. The disputes immediately disappeared. For nylon dimensional issues, half are due to material properties and half to measurement practices. Explaining the measurement practices clearly is the lowest cost and fastest solution.

A batch of items salvaged with one humidity adjustment treatment

The starting point was assembling precision gears directly after molding with PA66, and the customer feedback indicated that the operational noise was relatively high.

During the incubation period, no one thought about going to the water intake, so we first checked the gear accuracy and assembly, and both were correct.

Outbreak occurs during batch re-inspection: after a batch of parts is conditioned with moisture according to the standard and then tested, the center distance change eliminates the backlash. The cause was found: the gears assembled in a dry state swell after absorbing water, and the backlash is consumed.

Three steps for settlement: unify humidity adjustment before assembly, mark drawings according to wet-state tolerances, and specify environmental conditions in the acceptance criteria. Noise complaints will then be cleared.

This case is often used by us to illustrate one thing: water absorption is not a defect, it is a material property. If the design accommodates the property, the problem does not exist.

Follow-up on low water absorption demand, three items in order.

Follow-up Question 1: Who provided the tolerance? Let's first unify the standard for dry and wet states, then discuss the material.

Follow-up Question 2: What is the humidity range of the service environment? Both coastal and inland areas, as well as rainy and dry seasons, need to be included in the range. The range must be determined before the size can be estimated.

Follow-up Question 3: Can the structure be modified to accommodate it? Adding reinforcement or leaving compensation gaps is often cheaper than changing the material, so calculate the structural costs first.

Extended Judgment (Domain-General)

These four points are not only for PA12 / PA66 / PA610 / various alloys, but are also extended judgments commonly used for the low water absorption modified series.

Judgment 1: Low water absorption does not equal no dimensional change. When water absorption drops from 1.5% to 0.8%, the dimensional change is 0.3%. The difference may seem small, but for precision tolerance parts (such as a gear with a 0.05mm tolerance), this is a fivefold cumulative deviation. Low water absorption is just an entry-level property.

Judgment 2: Glass fiber orientation causes dimensional stability to become 'anisotropic.' The more glass fiber there is, the greater the shrinkage difference between the flow direction and the perpendicular direction. This is a contrary issue for high-precision dimensional parts: the higher the glass fiber content, the better 'dimensional stability' in one direction, but worse in other directions. When making precision parts, do not consider glass fiber as a universal solution.

Judgment Three: Dimensional stability does not equal 'performance stability.' The dimensions may be good, but other indicators such as modulus, strength, temperature resistance, and creep may not necessarily be good at the same time. Therefore, precision electronic components are not all 'low water absorption'; it also depends on the specific working conditions. 'Low water absorption' is a necessary condition, not a sufficient one.

Judgment Four: Truly 'zero water absorption' plastics do not exist. Even materials like PVDF and PPS will absorb a small amount of water if exposed to high temperatures for a long period. Therefore, any promise of 'low water absorption' comes with conditions—it depends on the specific testing conditions. If soaking data for 1000 hours, 2000 hours, or 5000 hours is not provided, the promise itself is meaningless.

These four points are applicable because 'dimensionally stable nylon' sounds like 'a type of material'—but it actually refers to multiple approaches (low water absorption resin, oriented glass fiber, mineral filling, alloying). Which one to choose depends on the specific part's dimensional tolerances and long-term reliability requirements.

Judgment 1: There are two sources of dimensional changes, calculated separately. Water absorption expansion and thermal expansion and contraction may be in opposite directions; after stacking, they increase or decrease in total. Calculate based on working conditions, don't just think about it.

Judgment 2: Be aware of the cost of low water absorption. Switch to long carbon chains or semi-aromatic types, price and processing conditions will change, and the saved after-sales and excess material costs should be recorded in a single table.

Judgment 3: The verification sequence is humidity control, measurement, and assembly. Judgment signal: Measure both dry and wet states once in the same batch; if the difference exceeds one-third of the tolerance, the design side must take action.

Final Supplement Three Analyses.

Low Water Absorption and Low Shrinkage Are Two Things. Water absorption affects the dimensions during service, shrinkage affects the dimensions after demolding, mold compensation targets the latter, material selection targets the former. Mixing and discussing them together will take a long way.

Humidity control is not water soaking. Standard humidity control requires temperature and humidity conditions. Boiling parts with boiling water to "cook them to the right" size introduces new internal stress, which is a common pitfall in dirt methods.

Welding and inserts with low water absorption systems need to be reviewed. After material replacement, the strength of the welding line and insert grip will change; for precision parts with low water absorption materials, these two must be re-verified.

The last sentence to the design side: Mark both dry and wet state dimensions in the drawings so suppliers won't understand each other when quoting. A single line of notes saves months of disputes.

Here's a tip: For precision parts, check the drawings and write the "pre-measurement environmental condition" into the inspection specification, treating it at the same level as dimensional tolerances. With unified inspection conditions, size disputes are reduced by more than half.

Put a three-question and three-answer sheet before wrapping up.

High-frequency questionsOne-sentence answer
How much is the size difference between winter and summer?PA66 Can be up to two or more wires, calculate by wall thickness
How much is it more expensive to switch to low-absorbency material?Calculate the saved humidity adjustment process together
Is material replacement absolutely necessary?Not necessarily, humidity regulation and structural compensation are often cheaper .
What should be labeled on the drawings?Dry and wet two-row dimensions plus environmental conditions

Add another reverse case, explaining that low water absorption is not the whole answer to accuracy.

A precision parts project replaced PA66 with a low water absorption system, and size complaints never stopped; instead, there was an extra one. Investigation found that temperature fluctuations in the assembly workshop affected the area more than humidity, and the contribution of thermal expansion was overshadowed by water absorption issues. After adding the constant temperature storage and measurement standards, complaints were zeroed, and low water absorption materials actually seemed unnecessary.

Size is a function of temperature, humidity, and time; only one is handled, and the other two take the blame.

After this order, we made a check-up card by attributing first, then doing it ourselves: first measure heat, then measure humidity, then weigh it. After completing these three steps, decide whether to change the material. The card is small but plays a significant role; most precision parts selection decisions are due to unclear attribution.

The three-step order of the troubleshooting card is important: first measure heat because temperature responds quickly and results come out the same day; then measure humidity because humidity adjustment takes several days; and finally weigh because it accumulates wear or water loss data. Arranging from fast to slow is the shortest attribution path.

A customer posted this card in the measurement room. The workshop reported dimensional anomalies in three steps first, then contacted the supplier. Half of the abnormalities were answered in the second step. Once the process ran smoothly, their decision to change materials shifted from just guessing to looking at data. That's how confidence in procurement was built.

Conclusion

Low Water Absorption Nylon Selection, Four Sentences:

First, distinguish between moisture absorption and heating—two types of expansion, two solutions.

Calculate the actual moisture absorption amount—first know how much the change will be, then decide whether to change the material.

Prioritize modifying structure and tolerances—often more economical than material replacement.

Unified measurement aperture—whether the dry state or the wet state should be written on the drawing.

Changing materials is the last card, not the first. This statement is especially valuable when it comes to dimensions

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